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Published on: May 26, 2017
Intramolecular dephosphorylation of ERK by MKP3
Youngjoo Kim1, Adrian E Rice, John M Denu
1Oregon Health and Science University, Department of Biochemistry and Molecular Biology, Portland, Oregon 97239-3098, USA.
Abstract:
The dual specificity mitogen-activated protein kinase phosphatase MKP3 downregulates mitogenic signaling through dephosphorylation of extracellular signal-regulated kinase (ERK). Like other MKPs, MKP3 consists of a noncatalytic N-terminal domain and a catalytic C-terminal domain. ERK binding to the N-terminal noncatalytic domain of MKP3 has been shown to increase (up to 100-fold) the catalytic activity of MKP3 toward small artificial substrates. Here, we address the function of the N-terminal domain of MKP3 in either inter- or intramolecular dephosphorylation of pERK (phosphorylated ERK) and the stoichiometry of the MKP3/pERK Michaelis complex. These are important mechanistic distinctions given the observation that ERK exists in a monomer/dimer equilibrium that is shifted toward the dimer when phosphorylated and given that MKP3 undergoes catalytic activation toward other substrates when bound to ERK. Wild-type and engineered mutants of ERK and MKP3, binding analyses, reaction kinetics, and chemical cross-linking studies were used to demonstrate that the monomer of MKP3 binds to the monomeric form of pERK and that MKP3 within the resulting heterodimer performs intramolecular dephosphorylation of pERK. This study provides the first direct evidence that MKP3 utilizes intramolecular dephosphorylation between a complex consisting of one molecule each of MKP3 and ERK. Catalytic activation and substrate tethering by MKP3 lead to a >or=4000-fold rate enhancement (k(cat)/K(m)) for dephosphorylation of pERK.
Insights
Mitogen-activated protein kinase phosphatase 3 (MKP3) dephosphorylates extracellular signal-regulated kinase (ERK). This study shows MKP3 binds monomeric ERK and dephosphorylates it intramolecularly, enhancing the reaction rate over 4000-fold.
Area of Science:
- Molecular Biology
- Biochemistry
- Cell Signaling
Background:
- Mitogen-activated protein kinase phosphatase 3 (MKP3) regulates cellular signaling by dephosphorylating extracellular signal-regulated kinase (ERK).
- MKP3's N-terminal domain enhances its catalytic activity upon ERK binding.
- Understanding the dephosphorylation mechanism is crucial given ERK's monomer/dimer equilibrium and MKP3's catalytic activation.
Purpose of the Study:
- To investigate the role of MKP3's N-terminal domain in the dephosphorylation of phosphorylated ERK (pERK).
- To determine the stoichiometry of the MKP3/pERK complex.
- To elucidate whether dephosphorylation is an intermolecular or intramolecular process.
Main Methods:
- Utilized wild-type and engineered mutants of ERK and MKP3.
- Employed binding analyses, reaction kinetics, and chemical cross-linking studies.
Main Results:
- Demonstrated that monomeric MKP3 binds to monomeric pERK, forming a heterodimer.
- Showed that MKP3 performs intramolecular dephosphorylation of pERK within this complex.
- Observed a rate enhancement of at least 4000-fold (k(cat)/K(m)) for pERK dephosphorylation.
Conclusions:
- Provided the first direct evidence for MKP3-mediated intramolecular dephosphorylation of pERK.
- Established that MKP3 acts on monomeric pERK through an intramolecular mechanism.
- Highlighted the significant catalytic activation and substrate tethering by MKP3 in this process.
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